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Updated: Mar 31, 2026

Characterization of Cell Membrane Extensions and Studying Their Roles in Cancer Cell Adhesion Dynamics
Published on: March 26, 2018
Molecular Pathways: New Signaling Considerations When Targeting Cytoskeletal Balance to Reduce Tumor Growth
Kristi R Chakrabarti1,2, Lindsay Hessler1,3, Lekhana Bhandary1,2
1Marlene and Stewart Greenebaum NCI Cancer Center, University of Maryland School of Medicine, 22 S. Greene Street, Baltimore, MD 21201, USA.
Abstract:
The dynamic balance between microtubule extension and actin contraction regulates mammalian cell shape, division, and motility, which has made the cytoskeleton an attractive and very successful target for cancer drugs. Numerous compounds in clinical use to reduce tumor growth cause microtubule breakdown (vinca alkaloids, colchicine-site, and halichondrins) or hyperstabilization of microtubules (taxanes and epothilones). However, both of these strategies indiscriminately alter the assembly and dynamics of all microtubules, which causes significant dose-limiting toxicities on normal tissues. Emerging data are revealing that posttranslational modifications of tubulin (detyrosination, acetylation) or microtubule-associated proteins (Tau, Aurora kinase) may allow for more specific targeting of microtubule subsets, thereby avoiding the broad disruption of all microtubule polymerization. Developing approaches to reduce tumor cell migration and invasion focus on disrupting actin regulation by the kinases SRC and ROCK. Because the dynamic balance between microtubule extension and actin contraction also regulates cell fate decisions and stem cell characteristics, disrupting this cytoskeletal balance could yield unexpected effects beyond tumor growth. This review will examine recent data demonstrating that cytoskeletal cancer drugs affect wound-healing responses, microtentacle-dependent reattachment efficiency, and stem cell characteristics in ways that could affect the metastatic potential of tumor cells, both beneficially and detrimentally.
Insights
Cancer drugs targeting the cytoskeleton disrupt microtubule dynamics and actin regulation. Novel strategies focus on specific tubulin modifications to minimize toxicity and impact tumor cell migration and stem cell traits.
Area of Science:
- Cell Biology
- Cancer Therapeutics
- Biochemistry
Background:
- The cytoskeleton, crucial for cell functions, is a validated target for cancer drugs.
- Current drugs targeting microtubules cause broad toxicity by indiscriminately affecting microtubule dynamics.
- Targeting actin regulation by kinases like SRC and ROCK is a strategy to reduce tumor cell migration and invasion.
Purpose of the Study:
- To review emerging data on cytoskeletal cancer drugs.
- To examine how these drugs affect wound healing, cell reattachment, and stem cell characteristics.
- To understand the impact of cytoskeletal drug targeting on tumor metastasis.
Main Methods:
- Literature review of recent data on cytoskeletal cancer drugs.
- Analysis of tubulin posttranslational modifications (detyrosination, acetylation).
- Investigation of microtubule-associated proteins (Tau, Aurora kinase) and actin regulatory kinases (SRC, ROCK).
Main Results:
- Posttranslational modifications offer potential for specific microtubule targeting, reducing toxicity.
- Cytoskeletal drugs impact wound healing, cell reattachment, and stem cell properties.
- Disrupting the microtubule-actin balance can influence metastatic potential.
Conclusions:
- Targeting specific microtubule subsets via posttranslational modifications may overcome current drug toxicities.
- Cytoskeletal modulation affects processes beyond tumor growth, including metastasis.
- Further research into cytoskeletal dynamics is crucial for developing safer and more effective cancer therapies.
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